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UPDATE: Everything I know about referencing/dereferencing came from here: http://www.thegeekstuff.com/2010/06/perl-array-reference-examples/

I'm working with a library that (from the library documentation):

Returns a reference to an array of hash references

This conceptually makes sense to me (i'm not new to programming) but doesn't make sense functionally (i'm, apparently, very new to perl).

Here's some code:

my $Obj  = QA::STK::ModuleImUsing->new(arguments, to, new);
$Obj->createClient();
$Obj->sync( ['/tmp/files/...']);
my $result = $Obj->method_in_question(['/tmp/files/ff-latest.xml']);

So far so good. $result now holds the reference to an array.

So when I do this:

print "Result: @{ $result} \n";

I get:

Result: HASH(0x20d95b0)

Lovely! But I still need to dereference the hash. However, here's where things get weird (or maybe they've already gotten weird?).

my $hash_ref = @{ $result};
print Dump($hash_ref));

I get this:

$VAR1 = 1;

Which...isn't what I was expecting at all.

Are my expectations wrong or am I dereferencing things in the wrong way?

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my $hash_ref = @{ $result}; - I'm sorry, but what's that supposed to do? Assign an array to a scalar? ) Why don't you just Dump $result itself? –  raina77ow Mar 28 '14 at 16:41
    
I think it's supposed to dereference the array referenced by $result. And since that should be a hash reference, I put it into a scalar. I don't know if that's wrong.... –  Ramy Mar 28 '14 at 16:43
1  
You don't need to deference an array - you need to get its first element (which is a reference to a hash). One possible approach is to use this notation: my $hash_ref = $result->[0]; –  raina77ow Mar 28 '14 at 16:45
1  
    
do you only ever need the first hash reference in the array? –  ysth Mar 28 '14 at 16:59

3 Answers 3

up vote 5 down vote accepted

If @$result is an array then your LHS must be a list. Otherwise $hashref will be assigned the array size.

my ($hash_ref) = @{ $result};
print Dump($hash_ref));
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2  
This is great but can you explain what's happening? Just tested it. This works. But...why? –  Ramy Mar 28 '14 at 16:44
1  
@Ramy, Array in scalar context returns its length. my (...) = forces the use of the list assignment operator which evaluates its arguments in list context. perlmonks.org/?node_id=790129 –  ikegami Mar 28 '14 at 16:54
  • We have a %hash.
  • To this, we have a hash reference $hashref = \%hash
  • This hashref is inside an array @array = ($hashref)
  • We get an array reference: $arrayref = \@array

This is our result: $result = $arrayref. Not let's work backwards:

  • @result_array = @$result
  • $result_hashref = $result_array[0] or combined: $result_hashref = $result->[0]
  • %result_hash = %$result_hashref or combined: %result_hash = %{ $result->[0] } (note that these make a copy)
  • To get an element in the result hash, we can do
    • $result_hash{$key}
    • $result_hashref->{$key}
    • $result->[0]{$key}

Note that $scalar = @{ $arrayref } does not work as you expect, because an array (which @{ … } is) returns the length of the array in scalar context. To force list context in an assignment, put the left hand side into parens: (…) = here_is_list_context (where is a list of zero or more lvalues).

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my $hash_ref = @{$result};

is the same as

my @array = @{$result};
my $hash_ref = @array;

This forces the array to be evaluated in scalar context by the assignment operator, which causes it to evaluate as the number of items in the array, or 1.

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